5

We have these functions

foo x1 x2 ... xN =

f1 x =
f2 x =
...
fN x = 

Is there idiomatic pointfree version of this function?

bar x1 x2 ... xn = foo (f1 x1) (f2 x2) ... (fN xN)

edit

If not can we somehow generalize this function to N parameters?

applyF3 f f1 f2 f3 x1 x2 x3 = f (f1 x1) (f2 x2) (f3 x3)
bar = applyF3 foo f1 f2 f3
  • 7
    I think the pointful version you suggested is about as idiomatic as it gets. – Daniel Wagner Aug 23 '15 at 10:29
  • For n = 5 you'd get something like: bar = flip flip f5 . ((flip . ((flip . ((.) .)) .)) .) . flip flip f4 . ((flip . ((.) .)) .) . flip flip f3 . ((.) .) . (. f2) . foo . f1 ... – Bakuriu Aug 23 '15 at 11:37
6

Not really idiomatic:

import Control.Arrow

bar = curry . curry $ (f1 *** f2) *** f3 >>> (uncurry . uncurry $ foo)

Add more curry/uncurrys for more arguments.

The pointful version is much more clear.

  • 2
    Yes, although with N-ary versions of curry/uncurry like we have for (eg) zipWith and liftM, this would be reasonably clear: bar = curry4 $ uncurry4 foo . (f1 *** f2 *** f3 *** f4) – amalloy Aug 23 '15 at 11:43
  • @amalloy I think with example of curryN uncurryN implementation you should post curryN $ uncurryN foo . (f1 *** f2 *** ... *** fN) as answer. – ais Aug 23 '15 at 12:41
  • @amalloy Indeed. I looked for them on hackage, but surprisingly they are not in any package. They are easy to define, of course, but I wanted to stick to available combinators. Also don't forget that uncurryN would produce (I assume) an N-tuple, which is incompatible with f1***...***fN which expects nested pairs. – chi Aug 23 '15 at 12:45
  • 1
    @chi I think this functions should have different names, something like curryPairs uncurryPairs – ais Aug 23 '15 at 12:58
1

If we have this set of functions

uncurryPairsN f (x1,(x2,...)) =  f x1 x2 ... xN
curryPairsN f x1 x2 ... xN =  f (x1, (x2, ...))

then

bar = curryPairsN $ uncurryPairsN foo . (f1 *** f2 *** ... *** fN)
0

You could use Data.Function.Pointless from the package pointless-fun:

If you have

bar x1 x2 x3 = foo (f1 x1) (f2 x2) (f3 x3)

you can turn it into the pointless refactoring

bar = foo ~> f1 ~> f2 ~> f3 ~> id

The workings are described in a blog post.

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